Cargando…

Proliferation of Myoblast Skeletal Cells on Three-Dimensional Supermacroporous Cryogels

Cardiac and skeletal muscle tissue engineering provides a smart approach to overcome problems associated with organ transplantation and cardiac tissue and also lays a platform for superior alternative approaches in muscle regeneration. The aim of the study was to demonstrate cryogel scaffold potenti...

Descripción completa

Detalles Bibliográficos
Autores principales: Singh, Deepti, Nayak, Vijayashree, Kumar, Ashok
Formato: Texto
Lenguaje:English
Publicado: Ivyspring International Publisher 2010
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2899455/
https://www.ncbi.nlm.nih.gov/pubmed/20617130
_version_ 1782183552911147008
author Singh, Deepti
Nayak, Vijayashree
Kumar, Ashok
author_facet Singh, Deepti
Nayak, Vijayashree
Kumar, Ashok
author_sort Singh, Deepti
collection PubMed
description Cardiac and skeletal muscle tissue engineering provides a smart approach to overcome problems associated with organ transplantation and cardiac tissue and also lays a platform for superior alternative approaches in muscle regeneration. The aim of the study was to demonstrate cryogel scaffold potential in the field of skeletal muscle and cardiac tissue engineering. Poly-hydroxyethyl methacrylate (pHEMA)-gelatin cryogel scaffold was synthesized using cryogelation technique and such a designed material is being reported first time. Rheology study of the pHEMA-gelatin (HG) suggested that the cryogel scaffolds were stable at different temperatures and phase angle remained constant in both dry and wet state. HG cryogel was able to bear increased stress without leading to deformation. Monitoring the hydration of HG scaffold showed shift from a stiff to a more pliable material and upon continuing hydration, shear modulus remained constant with no further change observed. However, the change in phase angle <0.24º indicates a gradual increase in stiffness of the material over time. Scaffold synthesised using such polymer combinations gave cells a native environment for proliferation and surface stiffness have shown to help in differentiation of the cells. Myoskeletal cell lines were cultured on these scaffolds to check the biocompatibility and cell proliferation. Alamar blue assay performed over a period of 3 weeks analysed the metabolic activity of cells which showed more than 60% increase in the total cellular activity. DNA content of cells was found to be directly related to number of cells present at a given time point and this was found to have increased by more than 50% in 3 weeks. Since in 3-D scaffold the surface area is more in comparison to 2-D, hence better cell proliferation is observed. Hoechst and DAPI staining showed tubular structure and alignment of the cells during formation of the tubules shows promising cellular response to the cryogel matrix. The mechanical strength, stiffness and elastic measurements of the scaffold indicated potential application of these materials for skeletal and cardiac tissue engineering.
format Text
id pubmed-2899455
institution National Center for Biotechnology Information
language English
publishDate 2010
publisher Ivyspring International Publisher
record_format MEDLINE/PubMed
spelling pubmed-28994552010-07-08 Proliferation of Myoblast Skeletal Cells on Three-Dimensional Supermacroporous Cryogels Singh, Deepti Nayak, Vijayashree Kumar, Ashok Int J Biol Sci Research Paper Cardiac and skeletal muscle tissue engineering provides a smart approach to overcome problems associated with organ transplantation and cardiac tissue and also lays a platform for superior alternative approaches in muscle regeneration. The aim of the study was to demonstrate cryogel scaffold potential in the field of skeletal muscle and cardiac tissue engineering. Poly-hydroxyethyl methacrylate (pHEMA)-gelatin cryogel scaffold was synthesized using cryogelation technique and such a designed material is being reported first time. Rheology study of the pHEMA-gelatin (HG) suggested that the cryogel scaffolds were stable at different temperatures and phase angle remained constant in both dry and wet state. HG cryogel was able to bear increased stress without leading to deformation. Monitoring the hydration of HG scaffold showed shift from a stiff to a more pliable material and upon continuing hydration, shear modulus remained constant with no further change observed. However, the change in phase angle <0.24º indicates a gradual increase in stiffness of the material over time. Scaffold synthesised using such polymer combinations gave cells a native environment for proliferation and surface stiffness have shown to help in differentiation of the cells. Myoskeletal cell lines were cultured on these scaffolds to check the biocompatibility and cell proliferation. Alamar blue assay performed over a period of 3 weeks analysed the metabolic activity of cells which showed more than 60% increase in the total cellular activity. DNA content of cells was found to be directly related to number of cells present at a given time point and this was found to have increased by more than 50% in 3 weeks. Since in 3-D scaffold the surface area is more in comparison to 2-D, hence better cell proliferation is observed. Hoechst and DAPI staining showed tubular structure and alignment of the cells during formation of the tubules shows promising cellular response to the cryogel matrix. The mechanical strength, stiffness and elastic measurements of the scaffold indicated potential application of these materials for skeletal and cardiac tissue engineering. Ivyspring International Publisher 2010-07-03 /pmc/articles/PMC2899455/ /pubmed/20617130 Text en © Ivyspring International Publisher. This is an open-access article distributed under the terms of the Creative Commons License (http://creativecommons.org/licenses/by-nc-nd/3.0/). Reproduction is permitted for personal, noncommercial use, provided that the article is in whole, unmodified, and properly cited.
spellingShingle Research Paper
Singh, Deepti
Nayak, Vijayashree
Kumar, Ashok
Proliferation of Myoblast Skeletal Cells on Three-Dimensional Supermacroporous Cryogels
title Proliferation of Myoblast Skeletal Cells on Three-Dimensional Supermacroporous Cryogels
title_full Proliferation of Myoblast Skeletal Cells on Three-Dimensional Supermacroporous Cryogels
title_fullStr Proliferation of Myoblast Skeletal Cells on Three-Dimensional Supermacroporous Cryogels
title_full_unstemmed Proliferation of Myoblast Skeletal Cells on Three-Dimensional Supermacroporous Cryogels
title_short Proliferation of Myoblast Skeletal Cells on Three-Dimensional Supermacroporous Cryogels
title_sort proliferation of myoblast skeletal cells on three-dimensional supermacroporous cryogels
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2899455/
https://www.ncbi.nlm.nih.gov/pubmed/20617130
work_keys_str_mv AT singhdeepti proliferationofmyoblastskeletalcellsonthreedimensionalsupermacroporouscryogels
AT nayakvijayashree proliferationofmyoblastskeletalcellsonthreedimensionalsupermacroporouscryogels
AT kumarashok proliferationofmyoblastskeletalcellsonthreedimensionalsupermacroporouscryogels